214 lines
6.0 KiB
C
214 lines
6.0 KiB
C
/*
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* Copyright (c) 2018-2020, Arm Limited. All rights reserved.
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*
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* SPDX-License-Identifier: BSD-3-Clause
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*
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*/
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/**
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* \file psa/crypto_struct.h
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*
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* \brief PSA cryptography module: structured type implementations
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*
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* \note This file may not be included directly. Applications must
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* include psa/crypto.h.
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*
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* This file contains the definitions of some data structures with
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* implementation-specific definitions.
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*
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* In implementations with isolation between the application and the
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* cryptography module, it is expected that the front-end and the back-end
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* would have different versions of this file.
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*/
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#ifndef PSA_CRYPTO_STRUCT_H
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#define PSA_CRYPTO_STRUCT_H
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#ifdef __cplusplus
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extern "C" {
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#endif
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/*
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* Note that the below structures are different from the decalrations in
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* mbed-crypto. This is because TF-M maintains 'front-end' and 'back-end'
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* versions of this header. In the front-end version, exported to NS
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* clients in interface/include/psa, a crypto operation is defined as an
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* opaque handle to a context in the Crypto service. The back-end
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* version, directly included from the mbed-crypto repo by the Crypto
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* service, contains the full definition of the operation structs.
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*
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* One of the functions of the Crypto service is to allocate the back-end
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* operation contexts in its own partition memory (in crypto_alloc.c),
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* and then do the mapping between front-end operation handles passed by
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* NS clients and the corresponding back-end operation contexts. The
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* advantage of doing it this way is that internal mbed-crypto state is never
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* exposed to the NS client.
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*/
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struct psa_hash_operation_s
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{
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uint32_t handle;
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};
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#define PSA_HASH_OPERATION_INIT {0}
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static inline struct psa_hash_operation_s psa_hash_operation_init( void )
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{
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const struct psa_hash_operation_s v = PSA_HASH_OPERATION_INIT;
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return( v );
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}
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struct psa_mac_operation_s
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{
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uint32_t handle;
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};
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#define PSA_MAC_OPERATION_INIT {0}
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static inline struct psa_mac_operation_s psa_mac_operation_init( void )
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{
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const struct psa_mac_operation_s v = PSA_MAC_OPERATION_INIT;
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return( v );
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}
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struct psa_cipher_operation_s
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{
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uint32_t handle;
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};
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#define PSA_CIPHER_OPERATION_INIT {0}
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static inline struct psa_cipher_operation_s psa_cipher_operation_init( void )
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{
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const struct psa_cipher_operation_s v = PSA_CIPHER_OPERATION_INIT;
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return( v );
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}
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struct psa_aead_operation_s
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{
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uint32_t handle;
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};
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#define PSA_AEAD_OPERATION_INIT {0}
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static inline struct psa_aead_operation_s psa_aead_operation_init( void )
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{
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const struct psa_aead_operation_s v = PSA_AEAD_OPERATION_INIT;
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return( v );
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}
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struct psa_key_derivation_s
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{
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uint32_t handle;
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};
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#define PSA_KEY_DERIVATION_OPERATION_INIT {0}
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static inline struct psa_key_derivation_s psa_key_derivation_operation_init( void )
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{
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const struct psa_key_derivation_s v = PSA_KEY_DERIVATION_OPERATION_INIT;
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return( v );
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}
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/* The type used internally for key sizes.
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* Public interfaces use size_t, but internally we use a smaller type. */
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typedef uint16_t psa_key_bits_t;
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/* The maximum value of the type used to represent bit-sizes.
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* This is used to mark an invalid key size. */
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#define PSA_KEY_BITS_TOO_LARGE ( (psa_key_bits_t) ( -1 ) )
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/* The maximum size of a key in bits.
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* Currently defined as the maximum that can be represented, rounded down
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* to a whole number of bytes.
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* This is an uncast value so that it can be used in preprocessor
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* conditionals. */
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#define PSA_MAX_KEY_BITS 0xfff8
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#define PSA_KEY_ATTRIBUTES_INIT PSA_CLIENT_KEY_ATTRIBUTES_INIT
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static inline struct psa_client_key_attributes_s psa_key_attributes_init( void )
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{
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const struct psa_client_key_attributes_s v = PSA_KEY_ATTRIBUTES_INIT;
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return( v );
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}
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static inline void psa_set_key_id(psa_key_attributes_t *attributes,
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psa_key_id_t id)
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{
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attributes->id = id;
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if( attributes->lifetime == PSA_KEY_LIFETIME_VOLATILE )
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attributes->lifetime = PSA_KEY_LIFETIME_PERSISTENT;
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}
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static inline psa_key_id_t psa_get_key_id(
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const psa_key_attributes_t *attributes)
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{
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return( attributes->id );
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}
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static inline void psa_set_key_lifetime(psa_key_attributes_t *attributes,
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psa_key_lifetime_t lifetime)
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{
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attributes->lifetime = lifetime;
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if( lifetime == PSA_KEY_LIFETIME_VOLATILE )
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{
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attributes->id = 0;
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}
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}
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static inline psa_key_lifetime_t psa_get_key_lifetime(
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const psa_key_attributes_t *attributes)
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{
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return( attributes->lifetime );
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}
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static inline void psa_set_key_usage_flags(psa_key_attributes_t *attributes,
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psa_key_usage_t usage_flags)
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{
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attributes->usage = usage_flags;
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}
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static inline psa_key_usage_t psa_get_key_usage_flags(
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const psa_key_attributes_t *attributes)
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{
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return( attributes->usage );
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}
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static inline void psa_set_key_algorithm(psa_key_attributes_t *attributes,
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psa_algorithm_t alg)
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{
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attributes->alg = alg;
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}
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static inline psa_algorithm_t psa_get_key_algorithm(
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const psa_key_attributes_t *attributes)
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{
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return( attributes->alg );
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}
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static inline void psa_set_key_type(psa_key_attributes_t *attributes,
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psa_key_type_t type)
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{
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attributes->type = type;
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}
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static inline psa_key_type_t psa_get_key_type(
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const psa_key_attributes_t *attributes)
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{
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return( attributes->type );
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}
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static inline void psa_set_key_bits(psa_key_attributes_t *attributes,
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size_t bits)
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{
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if( bits > PSA_MAX_KEY_BITS )
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attributes->bits = PSA_KEY_BITS_TOO_LARGE;
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else
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attributes->bits = bits;
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}
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static inline size_t psa_get_key_bits(
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const psa_key_attributes_t *attributes)
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{
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return( attributes->bits );
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}
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#ifdef __cplusplus
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}
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#endif
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#endif /* PSA_CRYPTO_STRUCT_H */
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